凝聚态物理
相图
材料科学
磁场
铁电性
磁各向异性
多铁性
金刚石顶砧
各向异性
磁电效应
极化(电化学)
磁化
相(物质)
物理
化学
热力学
电介质
高压
光学
物理化学
量子力学
光电子学
作者
Zhipeng Yu,Kun Zhai,Q. Wang,Hao Ding,Anmin Nie,Bochong Wang,Jianyong Xiang,Fusheng Wen,Congpu Mu,Tianyu Xue,Shipeng Shen,Zhongyuan Liu
标识
DOI:10.1088/1361-648x/ac965c
摘要
Pressure, as an independent thermodynamic parameter, is an effective tool to obtain novel material system and exotic physical phenomena not accessible at ambient conditions, because it profoundly modifies the charge, orbital and spin state by reducing the interatomic distance in crystal structure. However, the studies of magnetoelectricity and multiferroicity are rarely extended to high pressure dimension due to properties measured inside the high pressure vessel being a challenge. Here we reported the temperature-magnetic field-pressure magnetoelectric (ME) phase diagram of Y type hexaferrite Ba0.4Sr1.6Mg2Fe12O22derived from static pyroelectric current measurement and dynamic magnetodielectric in diamond anvil cell and piston cylinder cell. We found that a new spin-driven ferroelectric phase emerged atP= 0.7 GPa and sequentially ME effect disappeared aroundP= 4.3 GPa. The external pressure may enhance easy plane anisotropy to destabilize the longitudinal conical magnetic structure with the suppression of ME coefficient. These results offer essential clues for the correlation between ME effect and magnetic structure evolution under high pressure.
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